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Effect of Root-Induced Chemical Changes on Dynamics and Plant Uptake of Heavy Metals in Rhizosphere Soils 被引量:13

Effect of Root-Induced Chemical Changes on Dynamics and Plant Uptake of Heavy Metals in Rhizosphere Soils
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摘要 It is increasingly recognized that metal bioavailability is a better indicator of the potential for phytoremediation than the total metal concentration in soils; therefore, an understanding of the influence of phytoremediation plants on metal dynamics at the soil-root interface is increasingly vital for the successful implementation of this remediation technique. In this study, we investigated the heavy metal and soil solution chemical changes at field moisture, after growth of either Indian mustard (Brassica juncea) or sunflower (Helianthus annuus L.), in long-term contaminated soils and the subsequent metal uptake by the selected plants. In addition, the fractions of free metal ions in soil solution were determined using the Donnan membrane technique. After plant growth soil solution pH increased by 0.2-1.4 units and dissolved organic carbon (DOC) increased by 1-99 mg L^-1 in all soils examined. Soluble Cd and Zn decreased after Indian mustard growth in all soils examined, and this was attributed to increases in soil solution pH (by 0.9 units) after plant growth. Concentrations of soluble Cu and Pb decreased in acidic soils but increased in alkaline soils. This discrepancy was likely due to a competitive effect between plant-induced pH and DOC changes on the magnitude of metal solubility. The fractions of free Cd and Zn ranged from 7.2% to 32% and 6.4% to 73%, respectively, and they generally decreased as pH and DOC increased after plant growth. Metal uptake by plants was dependant on the soil solution metal concentration, which was governed by changes in pH and DOC induced by plant exudates, rather than on the total metal concentrations. Although plant uptake also varied with metal and soil types, overall soluble metal concentrations in the rhizosphere were mainly influenced by root-induced changes in pH and DOC which subsequently affected the metal uptake by plants. It is increasingly recognized that metal bioavailability is a better indicator of the potential for phytoremediation than the total metal concentration in soils; therefore, an understanding of the inffuence of phytoremediation plants on metal dynamics at the soil-root interface is increasingly vital for the successful implementation of this remediation technique. In this study, we investigated the heavy metal and soil solution chemical changes at field moisture, after growth of either Indian mustard (Brassica juncea) or sunffower (Helianthus annuus L.), in long-term contaminated soils and the subsequent metal uptake by the selected plants. In addition, the fractions of free metal ions in soil solution were determined using the Donnan membrane technique. After plant growth soil solution pH increased by 0.2-1.4 units and dissolved organic carbon (DOC) increased by 1-99 mg L-1 in all soils examined. Soluble Cd and Zn decreased after Indian mustard growth in all soils examined, and this was attributed to increases in soil solution pH (by 0.9 units) after plant growth. Concentrations of soluble Cu and Pb decreased in acidic soils but increased in alkaline soils. This discrepancy was likely due to a competitive effect between plant-induced pH and DOC changes on the magnitude of metal solubility. The fractions of free Cd and Zn ranged from 7.2% to 32% and 6.4% to 73%, respectively, and they generally decreased as pH and DOC increased after plant growth. Metal uptake by plants was dependant on the soil solution metal concentration, which was governed by changes in pH and DOC induced by plant exudates, rather than on the total metal concentrations. Although plant uptake also varied with metal and soil types, overall soluble metal concentrations in the rhizosphere were mainly inffuenced by root-induced changes in pH and DOC which subsequently affected the metal uptake by plants.
出处 《Pedosphere》 SCIE CAS CSCD 2010年第4期494-504,共11页 土壤圈(英文版)
基金 Supported by the University of South Australia, Australia
关键词 BIOAVAILABILITY PHYTOREMEDIATION SPECIATION 植物根际土壤 诱导动力学 化学变化 重金属 吸收
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  • 1Awad, F., Romheld, V. and Marschner, H. 1994. Effect of root exudates on mobilization in the rhizosphere and uptake of iron by wheat plants. Plant Soil. 165:213-218. 被引量:1
  • 2Dushenkov, S. and Kapulnik, Y. 2000. Phytofiltration of metals. In Ilya, R. and Ensley, B. D. (eds.) Phytoremediation of Toxic Metals. John Wiley & Sons, Inc., New York. pp. 89-106. 被引量:1
  • 3Ernst, W. H. O. 1996. Bioavailability of heavy metals and decontamination of soils by plants. Appl. Geochem. 11(1-2): 163-167. 被引量:1
  • 4Fotovat, A. and Naidu, R. 1998. Changes in composition of soft aqueous phase influence chemistry of indigenous heavy metals in alkaline sodic and acidic soils. Geoderma. 84: 213-234. 被引量:1
  • 5Hamon, R. E., Lorenz, S. E., Holm, P. E., Christensen, T. H. and McGrath, S. P. 1995. Changes in trace metal species and other components of the rhizosphere during growth of radish. Plant Cell Environ. 18: 749-756. 被引量:1
  • 6Hinsinger, P. 2001. Bioavailability of trace elements as related to root-induced chemical changes in the rhizosphere. In Gobran, G. R., Wenzel, W. W. and Lombi, E. (eds.) Trace Elements in the Rhizosphere. CRC Press, Boca Raton. pp. 25-40. 被引量:1
  • 7Kim, K. R., Owens, G. and Naidu, R. 2009. Heavy metal distribution, bioaccessibility and phytoavailability in long-term contaminated soils from Lake Macquarie, Australia. Aust. J. Soil Res. 47(2): 166-176. 被引量:1
  • 8Knight, B., Zhao, F. J., McGrath, S. P. and Shen, Z. G. 1997. Zinc and cadmium uptake by the hyperaccumulator Thlaspi caeruleseens in contaminated soils and its effects on the concentration and chemical speeiation of metals in soil solution. Plant Soil. 197:71- 78. 被引量:1
  • 9Lin, Q., Chen, Y. X., He, Y. F. and Tian, G. M. 2004. Root-induced changes of lead availability in the rhizosphere of Oryza sativa L. Agr. Ecosyst. Environ. 104(3): 605- 613. 被引量:1
  • 10Luo, Y. M., Christie, P. and Baker, A. J. M. 2000. Soil solution Zn and pH dynamics in non-rhizosphere soil and in the rhizosphere of Thlaspi caerulescens grown in a Zn/Cd-contaminated soil. Chemosphere. 41(1-2): 161-164. 被引量:1

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